Preparation of nearly-stoichiometric TiN powder by chemical vapor deposition in fluidized-bed

被引:0
|
作者
Sang Y. [1 ,2 ]
Xiang M. [1 ]
Song M. [1 ,2 ]
Zhu Q. [1 ,2 ]
机构
[1] Institute of Process Engineering, Chinese Academy of Sciences, Beijing
[2] School of Chemical Engineering, University of Chinese Academy of Sciences, Beijing
来源
Huagong Xuebao/CIESC Journal | 2020年 / 71卷 / 06期
关键词
Fluidized-bed chemical vapor deposition; Powder; Stoichiometric; Titanium nitride;
D O I
10.11949/0438-1157.20200077
中图分类号
学科分类号
摘要
The traditional gas-solid reaction process for preparing TiN powder has an insurmountable internal diffusion control process, which has caused great difficulties in preparing high-purity, positive stoichiometric ratio TiN powder. Herein, to address the issue, a fluidized bed chemical vapor deposition (FBCVD) process was developed to fabricate high quality TiN powders based on TiCl4-N2-H2 system. The results showed that when the average particle size of TiN seeds was larger than 52.95 μm, they can realize long-term stable fluidization at 1000℃ even for 2 h and the obtained powders was nearly stoichiometric ratio TiN0.96. In addition, the oxygen content of obtained TiN powders decreased about 40% compared with raw TiN seeds. Moreover, the growth of TiN was controlled by the Volmer-Weber growth mode, which provides a new horizon for preparing high quality TiN powder in industry. © All Right Reserved.
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页码:2743 / 2751
页数:8
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  • [1] Nagakura S, Kusunoki T, Kakimoto F, Et al., Lattice parameter of the non-stoichiometric compound TiN<sub>x</sub>, J. Appl. Cryst, 8, 1, pp. 65-66, (1975)
  • [2] Liang H L, Jin X, Zhou D Y, Et al., Thickness dependent microstructural and electrical properties of TiN thin films prepared by DC reactive magnetron sputtering, Ceram. Int, 42, 2, pp. 2642-2647, (2015)
  • [3] Liu M J, Dong Y Z, Wu Y M, Et al., Titanium nitride nanocrystals on nitrogen-doped graphene as efficient electrocatalysts for oxygen reduction reaction, Chem. J. Eur, 19, 44, pp. 14781-14786, (2013)
  • [4] He P, Wang Y, Zhou H S., Titanium nitride catalyst cathode in a Li-air fuel cell with an acidic aqueous solution, Chem. Commun, 47, 38, pp. 10701-10703, (2011)
  • [5] Musthafa O T, Sampath S., High performance platinized titanium nitride catalyst for methanol oxidation, Chem. Commun, 7, 1, pp. 67-69, (2008)
  • [6] Gray B M, Hector A l, Jura M, Et al., Effect of oxidative surface treatments on charge storage at titanium nitride surfaces for supercapacitor applications, J. Mater. Chem. A, 5, 9, pp. 4550-4559, (2017)
  • [7] Dong S M, Chen X, Cui G L, Et al., One dimensional MnO<sub>2</sub>/titanium nitride nanotube coaxial arrays for high performance electrochemical capacitive energy storage, Energy Environ Sci, 4, 9, pp. 3502-3508, (2011)
  • [8] Kim W M, Kim S H, Lee K S, Et al., Titanium nitride thin film as an adhesion layer for surface plasmon resonance sensor chips, Appl. Surf. Sci, 261, pp. 749-752, (2012)
  • [9] Wang Y, Yuan H Y, Lu X L, Et al., All solid-state pH electrode based on titanium nitride sensitive film, Electroanalysis, 18, 15, pp. 1493-1498, (2006)
  • [10] Ishii S, Shinde S L, Jevasuwan W, Et al., Hot electron excitation from titanium nitride using visible light, ACS Photonics, 3, 9, pp. 1552-1557, (2016)